Genetic Dissection of Heat Stress Tolerance in Soybean through Genome-Wide Association Studies and the Use of Genomic Prediction to Enhance Breeding Applications
Van der Laan, L.; Peixoto, L. d. A.; Singh, A. K.
Show abstract
Rising temperatures and associated heat stress pose an increasing threat to soybean [Glycine max L. (Merr.)] productivity. Due to a limited choice of mitigation strategies, the primary arsenal in crop protection comes from improved genetic stress tolerance. Despite this current and looming threat to soybean production, limited studies have examined the genetics of heat stress tolerance. There is a need to conduct large-scale germplasm screening and genetic studies, including genome-wide association mapping and genomic prediction, to identify genomic regions and useful markers associated with heat tolerance traits that can be utilized in soybean breeding programs. We screened a diverse panel of 450 soybean accessions from MG 0-IV to dissect the genetic architecture of physiological and growth-related traits under optimal and heat stress temperatures and study trait relationships and predictive ability. The genetic architecture information of the response to heat revealed in this study provides insights into the genetics of heat stress tolerance. Thirty-seven significant SNPs were detected, with 20 unique SNPs detected in optimal, 16 detected in heat stress, and a single SNP detected for a heat tolerance index. Only one significant SNP was identified across temperature treatments indicating a genetic divergence in soybean responses to temperature. The genomic prediction worked well for biomass traits, but physiological traits associated with heat stress had poor model accuracy. Through our phenotyping efforts, we identified heat tolerant soybean accessions. The identification of heat tolerant accessions and significant SNPs are useful in heat tolerant variety development through marker-assisted and genomic selection. Core ideasO_LISoybean exhibit phenotypic diversity in response to heat stress. C_LIO_LILarge scale phenotypic screening identified heat tolerant accessions. C_LIO_LIPreviously unreported QTL and SNP associated with biomass and physiological parameters under heat stress are reported. C_LIO_LIGenomic prediction shows promise in abiotic stress breeding applications. C_LI
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Genetic basis of phenotypic plasticity and genotype x environment interaction in a multi-parental population 97%
- High-throughput field phenotyping reveals that selection in breeding has affected the phenology and temperature response of wheat in the stem elongation phase 96%
- Linking phenology, harvest index and genetics to improve chickpea grain yield 96%
Similar papers in this journal
- Identification of QTL hotspots affecting agronomic traits and high-throughput vegetation indices in rainfed wheat 97%
- High-throughput phenotyping reveals multiple drought responses of wild and cultivated Phaseolinae beans 96%
- Comparison of Single-Trait and Multi-Trait Genome-Wide Association Models and Inclusion of Correlated Traits in the Dissection of the Genetic Architecture of a Complex Trait in a Breeding Program 96%
Similar papers in this journal
- The soybean (Glycine max L.) cytokinin oxidase/dehydrogenase multigene family; identification of natural variations for altered cytokinin content and seed yield 96%
- Phenotypic and transcriptomic analysis reveals early stress responses in transgenic rice expressing Arabidopsis DREB1a 95%
- Identification of genes associated with abiotic stress tolerance in sweetpotato using weighted gene co-expression network analysis 95%
Similar papers in this journal
- Image-based phenomic prediction can provide valuable decision support in wheat breeding 96%
- Sequencing depth and genotype quality: Accuracy and breeding operation considerations for genomic selection applications in autopolyploid crops 96%
- Large scale genome-wide association study reveals that drought induced lodging in grain sorghum is associated with plant height and traits linked to carbon remobilisation 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.